Conceptual design and analysis of a tricycle mounted solar-powered photovoltaic cold room system

A. Akinsade, J. Eiche, A. Akinola, M.O. Famodun
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Abstract

Energy crisis in developing countries is worrisome, and this has made the preservation and transportation of medical and perishable  food items a common problem. Most conventional refrigeration systems operate with electricity; however, there are regions where it is  difficult or not cost efficient to provide electric service. Therefore, this research seeks to solve the problems of inconsistent, irregular and  complete non availability of power supply required to keep food products and drugs refrigerated over a long period of time by designing  a tricycle mounted solar-powered cold room. The tricycle mounted solar-powered cold room designed consists of a refrigeration system  having a compressor, a condenser, an expansion valve and an evaporator; a solar system having a photovoltaic (PV) module, charge  regulator, storage battery and DC to AC inverter; and a tricycle for easy distribution and safe delivery of refrigerated items. A  comprehensive analytical design was performed on each of the systems and the design results showed that the solar-powered cold room has refrigerating cooling load, PV array size, battery cap, and inverter power of 986 W, 275 W, 94 kWh, and 8000 W respectively. A  structural analysis was also carried out on the tricycle chassis using the finite element method on Autodesk Inventor software. The results  showed that the maximum von misses stress experienced by tricycle chassis was 56.96 MPa which is significantly lower than the  yield strength of the chassis material used in the design, indicating a robust structural integrity and can therefore be used to carry the   loads that it will be subjected to without deformation.
三轮车太阳能光伏冷藏室系统的概念设计与分析
发展中国家的能源危机令人担忧,这使得医疗和易腐食品的保存和运输成为一个普遍问题。大多数传统制冷系统都是用电运行的,但在有些地区,供电服务很难提供,或者成本效益不高。因此,本研究试图通过设计一种安装在三轮车上的太阳能冷藏室,解决长期冷藏食品和药品所需的电力供应不稳定、不规则和完全不可用的问题。所设计的安装在三轮车上的太阳能冷藏室包括一个制冷系统,其中有压缩机、冷凝器、膨胀阀和蒸发器;一个太阳能系统,其中有光伏(PV)模块、充电调节器、蓄电池和直流变交流逆变器;以及一辆便于配送和安全运送冷藏物品的三轮车。设计结果表明,太阳能冷藏室的制冷负荷、光伏阵列尺寸、蓄电池容量和逆变器功率分别为 986 W、275 W、94 kWh 和 8000 W。此外,还使用 Autodesk Inventor 软件上的有限元法对三轮车底盘进行了结构分析。结果表明,三轮车底盘承受的最大 von misses 应力为 56.96 兆帕,大大低于设计中使用的底盘材料的屈服强度,这表明三轮车底盘具有坚固的结构完整性,因此可用于承受负载而不会变形。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
0.10
自引率
0.00%
发文量
126
审稿时长
11 weeks
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